Abstract
DNA profiling based on STRs currently represents the gold standard for personal identification in forensics, but it is unable to provide information on the temporal dimension of a biological trace. The "OMICS-Clock" framework aims to bridge this critical gap by integrating epigenomics and transcriptomics to estimate chronological age and trace deposition times. Through the analysis of DNA methylation for age, RNA decay for Time since Deposition (TsD), and rhythmic genes for Time of Day (ToD), the project utilizes machine-learning models to transform multi-omic data into objective molecular timelines. This approach enhances investigations in complex scenarios, such as Disaster Victim Identification (DVI) and the analysis of degraded skeletal remains, ensuring greater evidential reliability and supporting judicial truth.
| Lingua originale | Inglese |
|---|---|
| Stato di pubblicazione | Pubblicato - 2026 |
| Evento | 24th Triennial Meeting of the International Association of Forensic Sciences - Sofia (Bulgaria) Durata: 1 gen 2026 → … |
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| ???event.eventtypes.event.conference??? | 24th Triennial Meeting of the International Association of Forensic Sciences |
|---|---|
| Città | Sofia (Bulgaria) |
| Periodo | 1/01/26 → … |
OSS delle Nazioni Unite
Questo processo contribuisce al raggiungimento dei seguenti obiettivi di sviluppo sostenibile
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SDG 16 Pace, giustizia e istituzioni solide
Keywords
- Multi-omic Forensics Age Estimation Time since Deposition (TsD) Forensic Epigenomics
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